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Evolutionary methods for multidisciplinary optimization applied to the design of UAV systems

机译:进化优化方法在无人机系统设计中的应用

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The implementation and use of a framework in which engineering optimization problems can be analysed are described. In the first part, the foundations of the framework and the hierarchical asynchronous parallel multi-objective evolutionary algorithms (HAPMOEAs) are presented. These are based upon evolution strategies and incorporate the concepts of multi-objective optimization, hierarchical topology, asynchronous evaluation of candidate solutions, and parallel computing. The methodology is presented first and the potential of HAPMOEAs for solving multi-criteria optimization problems is demonstrated on test case problems of increasing difficulty. In the second part of the article several recent applications of multi-objective and multidisciplinary optimization (MO) are described. These illustrate the capabilities of the framework and methodology for the design of UAV and UCAV systems. The application presented deals with a two-objective (drag and weight) UAV wing plan-form optimization. The basic concepts are refined and more sophisticated software and design tools with low- and high-fidelity CFD and FEA models are introduced. Various features described in the text are used to meet the challenge in optimization presented by these test cases.
机译:描述了可以分析工程优化问题的框架的实现和使用。在第一部分中,提出了框架和分层异步并行多目标进化算法(HAPMOEAs)的基础。这些基于进化策略,并包含了多目标优化,分层拓扑,候选解决方案的异步评估和并行计算的概念。首先介绍了该方法,并在难度越来越大的测试用例问题上证明了HAPMOEA解决多准则优化问题的潜力。在文章的第二部分中,介绍了多目标和多学科优化(MO)的几种最新应用。这些说明了用于设计UAV和UCAV系统的框架和方法的功能。提出的应用程序处理了两目标(阻力和重量)无人机机翼计划形式的优化。完善了基本概念,并引入了具有低和高保真CFD和FEA模型的更复杂的软件和设计工具。本文中描述的各种功能可用来应对这些测试用例提出的优化挑战。

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